Oxygen and seizure dynamics: I. Experiments

Author:

Ingram Justin12,Zhang Chunfeng23,Cressman John R.4,Hazra Anupam5,Wei Yina12,Koo Yong-Eun6,Žiburkus Jokūbas5,Kopelman Raoul6,Xu Jian2,Schiff Steven J.127

Affiliation:

1. Center for Neural Engineering, The Pennsylvania State University, University Park, Pennsylvania;

2. Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, Pennsylvania;

3. Nanjing National Laboratory of Microstructures, Nanjing University, Nanjing, China;

4. Department of Physics, Astronomy, and Computational Sciences, George Mason University, Fairfax, Virginia;

5. Department of Biology and Biochemistry, University of Houston, Houston, Texas;

6. Department of Chemistry, University of Michigan, Ann Arbor, Michigan; and

7. Departments of Neurosurgery and Physics, The Pennsylvania State University, University Park, Pennsylvania

Abstract

We utilized a novel ratiometric nanoquantum dot fluorescence resonance energy transfer (NQD-FRET) optical sensor to quantitatively measure oxygen dynamics from single cell microdomains during hypoxic episodes as well as during 4-aminopyridine (4-AP)-induced spontaneous seizure-like events in rat hippocampal slices. Coupling oxygen sensing with electrical recordings, we found the greatest reduction in the O2 concentration ([O2]) in the densely packed cell body stratum (st.) pyramidale layer of the CA1 and differential layer-specific O2 dynamics between the st. pyramidale and st. oriens layers. These hypoxic decrements occurred up to several seconds before seizure onset could be electrically measured extracellularly. Without 4-AP, we quantified a narrow range of [O2], similar to the endogenous hypoxia found before epileptiform activity, which permits a quiescent network to enter into a seizure-like state. We demonstrated layer-specific patterns of O2 utilization accompanying layer-specific neuronal interplay in seizure. None of the oxygen overshoot artifacts seen with polarographic measurement techniques were observed. We therefore conclude that endogenously generated hypoxia may be more than just a consequence of increased cellular excitability but an influential and critical factor for orchestrating network dynamics associated with epileptiform activity.

Publisher

American Physiological Society

Subject

Physiology,General Neuroscience

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